Learn How to Integrate Sin x^4 with This Easy Tutorial - 1/32(12x-8sin 2x+sin4x)

[teng125]

may i know how to integ (sin x^4) ??

the answer is 1/32(12x - 8sin 2x + sin4x)

 

[VietDao29]

may i know how to integ (sin x^4) ??
the answer is 1/32(12x - 8sin 2x + sin4x)

Again, you can use Power-reduction formulas. Then use some Product-to-sum identities, your goal is convert that sin(x) to the power of 4 into some sine or cosine functions to the power of 1.
Now let's first split sin⁴x into (sin²x sin²x). Can you go from here?

 

[teng125]

i try to subs using cos2x=1-s(sinx)^2 but can't get

 

[VietDao29]

i try to subs using cos2x=1-s(sinx)^2 but can't get

So you have:
cos(2x) = cos²x - sin²x = 2cos²x - 1 = 1 - 2sin²x.
From there, rearrange them a bit, you will have:
\cos ^ 2 x = \frac{1 + \cos(2x)}{2} \quad \mbox{and} \quad \sin ^ 2 x = \frac{1 - \cos(2x)}{2}
These are call Power-reduction formulas.
So we will now use \sin ^ 2 x = \frac{1 - \cos(2x)}{2}.
\int \sin ^ 4 x dx = \int (\sin ^ 2 x) ^ 2 dx = \int \left( \frac{1 - \cos(2x)}{2} \right) ^ 2 dx = \frac{1}{4} \int ( 1 - \cos(2x) ) ^ 2 dx
= \frac{1}{4} \int ( 1 - 2 \cos(2x) + \cos ^ 2 (2x)) dx.
Now again use the Power-reduction formulas for cos²(2x).
Can you go from here?

 

[teng125]

ya,that's where i got stuck because i don't know how to get the sin4x.how to obtain 1/32 sin4x??

 

[VietDao29]

ya,that's where i got stuck because i don't know how to get the sin4x.how to obtain 1/32 sin4x??

Did I tell you to use the Power-reduction formulas for cos²(2x). It's the last line of my above post (namely, the #4 post of this thread).
Since you have:
\cos ^ 2 x = \frac{1 + \cos(2x)}{2}, so that means:
\cos ^ 2 (2x) = \frac{1 + \cos(2 \times (2x))}{2} = \frac{1 + \cos(4x)}{2}.
Can you go from here?

 

[teng125]

oh...okok i saw it...thanx very much